Next generation bioelectronic medicine: making the case for non-invasive closed-loop autonomic neuromodulation.

Imanuel Lerman, Yifeng Bu, Rahul Singh, Harold A Silverman, Anuj Bhardwaj, Alex J Mann, Alik Widge, Joseph Palin, Christopher Puleo, Hubert Lim
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Abstract

The field of bioelectronic medicine has advanced rapidly from rudimentary electrical therapies to cutting-edge closed-loop systems that integrate real-time physiological monitoring with adaptive neuromodulation. Early innovations, such as cardiac pacemakers and deep brain stimulation, paved the way for these sophisticated technologies. This review traces the historical and technological progression of bioelectronic medicine, culminating in the emerging potential of closed-loop devices for multiple disorders of the brain and body. We emphasize both invasive techniques, such as implantable devices for brain, spinal cord and autonomic regulation, while we introduce new prospects for non-invasive neuromodulation, including focused ultrasound and newly developed autonomic neurography enabling precise detection and titration of inflammatory immune responses. The case for closed-loop non-invasive autonomic neuromodulation (incorporating autonomic neurography and splenic focused ultrasound stimulation) is presented through its applications in conditions such as sepsis and chronic inflammation, illustrating its capacity to revolutionize personalized healthcare. Today, invasive or non-invasive closed-loop systems have yet to be developed that dynamically modulate autonomic nervous system function by responding to real-time physiological and molecular signals; it represents a transformative approach to therapeutic interventions and major opportunity by which the bioelectronic field may advance. Knowledge gaps remain and likely contribute to the lack of available closed loop autonomic neuromodulation systems, namely, (1) significant exogenous and endogenous noise that must be filtered out, (2) potential drift in the signal due to temporal change in disease severity and/or therapy induced neuroplasticity, and (3) confounding effects of exogenous therapies (e.g., concurrent medications that dysregulate autonomic nervous system functions). Leveraging continuous feedback and real-time adjustments may overcome many of these barriers, and these next generation systems have the potential to stand at the forefront of precision medicine, offering new avenues for individualized and adaptive treatment.

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下一代生物电子医学:无创闭环自主神经调节的案例。
生物电子医学领域已经从基本的电疗法迅速发展到尖端的闭环系统,该系统集成了实时生理监测和自适应神经调节。早期的创新,如心脏起搏器和深部脑刺激,为这些复杂的技术铺平了道路。这篇综述追溯了生物电子医学的历史和技术进步,最终出现了用于治疗大脑和身体多种疾病的闭环装置的潜力。我们强调侵入性技术,如大脑、脊髓和自主调节的植入式装置,同时我们介绍了非侵入性神经调节的新前景,包括聚焦超声和新开发的能够精确检测和滴定炎症免疫反应的自主神经造影术。闭环非侵入性自主神经调节(结合自主神经造影和脾聚焦超声刺激)通过其在脓毒症和慢性炎症等疾病中的应用,展示了其彻底改变个性化医疗保健的能力。目前,通过响应实时生理和分子信号动态调节自主神经系统功能的侵入性或非侵入性闭环系统尚未开发出来;它代表了一种治疗干预的变革性方法,也是生物电子学领域可能向前发展的主要机会。知识差距仍然存在,并且可能导致缺乏可用的闭环自主神经调节系统,即:(1)必须过滤掉显著的外源性和内源性噪声,(2)由于疾病严重程度和/或治疗诱导的神经可塑性的时间变化而导致的信号的潜在漂移,以及(3)外源性治疗的混淆效应(例如,并发药物失调自主神经系统功能)。利用持续反馈和实时调整可以克服许多这些障碍,这些下一代系统有可能站在精准医学的前沿,为个性化和适应性治疗提供新的途径。
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来源期刊
CiteScore
6.90
自引率
0.00%
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0
审稿时长
8 weeks
期刊最新文献
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